SPUTTERING TARGET WITH MICRO CHANNELS
20190035612 ยท 2019-01-31
Inventors
- SURANJAN DABARE (KOHUWULA, LK)
- RAVI THIRUN (MARKHAM, CA)
- GAYAN ARAVINDA ABEYGUNAWARDANE (PALLENWATTE, LK)
- ROMMEL MONTES (CALGARY, CA)
Cpc classification
C23C14/3407
CHEMISTRY; METALLURGY
H01J37/345
ELECTRICITY
C23C14/35
CHEMISTRY; METALLURGY
H01J37/3435
ELECTRICITY
International classification
Abstract
A sputtering target comprises a target material bonded to a backing plate. The target material has a circular disk shape and comprises a sputtering material. The backing plate has a circular disk shape and comprising an external surface. The external surface comprises a plurality of micro channels inset within that span the external surface. The sputtering target is arranged in a sputtering reactor with the external surface of the backing plate disposed external to the sputtering reactor and facing a magnetron, a nano fluid is introduced onto the external surface between the magnetron and the sputtering target, thereby cooling the sputtering target.
Claims
1. A sputtering target comprising: a target material, the target material being a circular disk and comprising a sputtering material; and a backing plate bonded to the target material, the backing plate having a circular disk shape and comprising an external surface, the external surface comprising a plurality of micro channels inset within, the plurality of micro channels spanning the external surface.
2. The sputtering target of claim 1 wherein the plurality of micro channels are arranged in parallel.
3. The sputtering target of claim 1 wherein the plurality of micro channels extend radially from the centre of the external surface.
4. The sputtering target of claim 1 wherein the plurality of micro channels have a rectangular cross section.
5. The sputtering target of claim 4 wherein the plurality of micro channels have a width and a depth, the ratio of width to depth being between 1:5 and 1:15.
6. The sputtering target of claim 1 wherein the bottom portion of the plurality of micro channels have a circular cross section.
7. The sputtering target of claim 1 wherein the bottom portion of the plurality of micro channels have a triangular cross section.
8. A method of cooling a sputtering target, the method comprising: arranging a sputtering target in a sputtering reactor, the sputtering target comprising a target material bonded to a backing plate, an external surface of the backing plate disposed external to the sputtering reactor and facing a magnetron; and introducing a nano fluid onto the external surface between the magnetron and the sputtering target.
9. The method of claim 8 wherein the nano fluid comprises a plurality of particles smaller than 100 nm in mean diameter.
10. The method of claim 9 wherein the plurality of particles are comprised of aluminum oxide.
11. The method of claim 9 wherein the plurality of particles comprise between 3% and 5% concentration of the nano fluid.
12. The method of claim 8 wherein the external surface comprises a plurality of micro channels inset within, the plurality of micro channels spanning the external surface.
13. The method of claim 12 wherein the plurality of micro channels are arranged in parallel.
14. The method of claim 13 wherein the plurality of micro channels have a rectangular cross section.
15. The method of claim 12 wherein the plurality of micro channels have a width and a depth, the ratio of width to depth being between 1:5 and 1:15.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING(S)
[0017] Embodiments of the present invention will now be described, by way of example only, with reference to the attached Figures, wherein:
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION OF THE INVENTION
[0023] Embodiments of the invention are directed towards a sputtering target comprising a plurality of parallel micro channels inset in the exterior surface of the target's backing plate and the use of a nano fluid liquid as a coolant.
[0024] Embodiments of the invention comprise a sputtering target that implements a plurality of micro channels within the exterior surface of the backing plate, the heat transfer surface. The use of micro grooves or channels increase the heat transfer by increasing the surface area of the target's backing plate. The heat transfer is further improved by the micro channels that increase the number of surface corners and edges in the surface of the improved sputtering target. The micro channels provide straight paths that allow an uninterrupted flow of coolant across the heat transfer surface.
[0025] Embodiments of the invention may also make use of nano fluids as a coolant. Nano fluids, liquids that have particles suspended within, enhance the interaction properties of the coolant with the target backing plate and within the micro channels. The nano particles do not settle under gravity and do not block the flow of the coolant over the target.
[0026] Efficient heat transfer to cool the target involves both conduction and convection. Conduction heat transfer is dependent on three main factors. The first is the surface area where the heat transfer is taking place. The heat transfer will be higher for larger surface area. The second is the thermal conduction coefficient of the material. The heat transfer will be higher for materials with a large thermal conduction coefficient which is typically titanium but may also be aluminium or other materials. The third factor is the temperature difference between the high and low temperature sides. The heat transfer will be higher for larger temperature differences between high and low sides. In a sputtering reactor, the space between the sputtering target 100 and the magnetron 104 may be as small as 1.5 mm which limits the ability to use these factors efficiently in such a small volume of space. Embodiments of the invention increase the surface area of the exterior surface of the backing plate of the sputtering target 100 where cooling is taking place and passes the coolant along the coolant pathway as quickly so that the temperature difference over the surface of the plate can be maintained constant while maintaining as large a temperature difference between the target backing plate and the coolant as possible.
[0027]
[0028] Referring to
[0029] The use of micro channels in the exterior surface of the backing plate 106 increases the surface area. Referring to
[0030] The cross section of the geometry also plays a major role in the efficiency of the micro channels 107. Referring to
[0031] Embodiments of the invention may use nano fluids as a coolant. Conventional coolants are typically deionized water or coolants containing mm or m-sized particles. However, these particles tend to clog tiny channels and settle in the liquid. Nano fluids are a new class of advanced heat transfer fluids that are engineered by dispersing nano particles smaller than 100 nm in mean diameter into conventional heat transfer fluids such as deionized water. Nano fluids have unique transport properties such as non-settlement of the particles under gravity and will not block the flow of coolant across the exterior surface of the backing plate 106. Along the flow path, these nano particles can also cause turbulent motions at the nano as well as micro level that can increase the convective heat transfer. The nano fluid used in embodiments of the invention will be circulated in a same manner as other known target cooling mechanisms. Embodiments of the invention may use aluminium oxide nano particles with 4% concentration in a base fluid of deionized water.
[0032] The ensuing description provides representative embodiment(s) only, and is not intended to limit the scope, applicability or configuration of the disclosure. Rather, the ensuing description of the embodiment(s) will provide those skilled in the art with an enabling description for implementing an embodiment or embodiments of the invention. It being understood that various changes can be made in the function and arrangement of elements without departing from the spirit and scope as set forth in the appended claims. Accordingly, an embodiment is an example or implementation of the inventions and not the sole implementation. Various appearances of one embodiment, an embodiment or some embodiments do not necessarily all refer to the same embodiments. Although various features of the invention may be described in the context of a single embodiment, the features may also be provided separately or in any suitable combination. Conversely, although the invention may be described herein in the context of separate embodiments for clarity, the invention can also be implemented in a single embodiment or any combination of embodiments.
[0033] Reference in the specification to one embodiment, an embodiment, some embodiments or other embodiments means that a particular feature, structure, or characteristic described in connection with the embodiments is included in at least one embodiment, but not necessarily all embodiments, of the inventions. The phraseology and terminology employed herein is not to be construed as limiting but is for descriptive purpose only. It is to be understood that where the claims or specification refer to a or an element, such reference is not to be construed as there being only one of that element. It is to be understood that where the specification states that a component feature, structure, or characteristic may, might, can or could be included, that particular component, feature, structure, or characteristic is not required to be included.
[0034] Reference to terms such as left, right, top, bottom, front and back are intended for use in respect to the orientation of the particular feature, structure, or element within the figures depicting embodiments of the invention. It would be evident that such directional terminology with respect to the actual use of a device has no specific meaning as the device can be employed in a multiplicity of orientations by the user or users.
[0035] Reference to terms including, comprising, consisting and grammatical variants thereof do not preclude the addition of one or more components, features, steps, integers or groups thereof and that the terms are not to be construed as specifying components, features, steps or integers. Likewise, the phrase consisting essentially of, and grammatical variants thereof, when used herein is not to be construed as excluding additional components, steps, features integers or groups thereof but rather that the additional features, integers, steps, components or groups thereof do not materially alter the basic and novel characteristics of the claimed composition, device or method. If the specification or claims refer to an additional element, that does not preclude there being more than one of the additional element.